APPLIED LASER, Volume. 43, Issue 8, 18(2023)
Effects of Process Parameters on Microstructure and Properties of 24CrNiMo Laser Cladding Coating
[4] [4] SHI X Y, WEN D S, WANG S R, et al. Investigation on friction and wear performance of laser cladding Ni-based alloy coating on brake disc[J]. Optik, 2021, 242: 167227.
[5] [5] WEI M W, CHEN S Y, XI L Y, et al. Selective laser melting of 24CrNiMo steel for brake disc: Fabrication efficiency, microstructure evolution, and properties[J]. Optics & Laser Technology, 2018, 107: 99-109.
[6] [6] ZHOU Y H, LIB W P, WANGA D W, et al. Selective laser melting enabled additive manufacturing of Ti-22Al-25Nb intermetallic: Excellent combination of strength and ductility, and unique microstructural features associated[J]. SSRN Electronic Journal, 2018: 117-129.
[7] [7] WU Y, LIU Y, CHEN H, et al. Microstructure evolution and crack propagation feature in thermal fatigue of laser-deposited Stellite 6 coating for brake discs[J]. Surface and Coatings Technology, 2019, 358: 98-107.
[8] [8] RINGSBERG J W, SKYTTEBOL A, JOSEFSON B L. Investigation of the rolling contact fatigue resistance of laser cladded twin-disc specimens: FE simulation of laser cladding, grinding and a twin-disc test[J]. International Journal of Fatigue, 2005, 27(6): 702-714.
[9] [9] WEI M W, CHEN S Y, SUN M, et al. Preparation of TA15 powder reinforced 45CrNiMoY alloy steel with high mechanical property by pre-laid laser cladding technology[J]. Materials Characterization, 2020, 160: 110097.
[10] [10] ZUO P F, CHEN S Y, WEI M W, et al. Thermal behavior and grain evolution of 24CrNiMoY alloy steel prepared by pre-laid laser cladding technology[J]. Optics & Laser Technology, 2019, 119: 105613.
[11] [11] LIU Y, WU Y, MA Y M, et al. High temperature wear performance of laser cladding Co06 coating on high-speed train brake disc[J]. Applied Surface Science, 2019, 481: 761-766.
[12] [12] FIGUEREDO E W A, APOLINARIO L H R, SANTOS M V, et al. Influence of laser beam power and scanning speed on the macrostructural characteristics of AISI 316L and AISI 431 stainless steel depositions produced by laser cladding process[J].Journal of Materials Engineering and Performance, 2021, 30(5): 3298-3312.
[16] [16] ZHONG C L, GASSER A, KITTEL J, et al. Improvement of material performance of Inconel 718 formed by high deposition-rate laser metal deposition[J]. Materials & Design, 2016, 98: 128-134.
[18] [18] ZHANG N, LIU W W, DENG D W, et al. Effect of electric-magnetic compound field on the pore distribution in laser cladding process[J]. Optics & Laser Technology, 2018, 108: 247-254.
[19] [19] SHI B W, LI T, WANG D, et al. Investigation on crack behavior of Ni60A alloy coating produced by coaxial laser cladding[J]. Journal of Materials Science, 2021, 56(23): 13323-13336.
[20] [20] NENADL O, OCELK V, PALAVRA A, et al. The prediction of coating geometry from main processing parameters in laser cladding[J]. Physics Procedia, 2014, 56: 220-227.
[27] [27] YUAN W Y, LI R F, CHEN Z H, et al. A comparative study on microstructure and properties of traditional laser cladding and high-speed laser cladding of Ni45 alloy coatings[J]. Surface and Coatings Technology, 2021, 405: 126582.
[28] [28] KANG X L, DONG S Y, WANG H B, et al. Inhomogeneous microstructure and its evolution of laser melting deposited 24CrNiMo steel: From single-track to bulk sample[J]. Materials Science and Engineering: A, 2020, 772: 138795.
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Wen Feijuan, Tao Shimei, Long Zhang, Chen Hui, Lü Hang, Chen Yong. Effects of Process Parameters on Microstructure and Properties of 24CrNiMo Laser Cladding Coating[J]. APPLIED LASER, 2023, 43(8): 18
Received: May. 3, 2022
Accepted: --
Published Online: May. 24, 2024
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